BACKGROUND OF THE INVENTION
1. Field of the Invention
[0001] The present invention relates to an apparatus for ejecting droplets.
2. Description of Related Art
[0002] It is required that an ink-jet head for ejecting ink to a recording sheet should
be able to eject fine ink droplets in order to realize a high-quality printing. Also
required is a technique for ejecting fine droplets to an ejection object in order
to form a fine wiring pattern at a substrate by ejecting a conductive paste, to form
a high-resolution display by ejecting an organic luminescent material onto a substrate,
to form a micro-optical device such as an optical waveguide by ejecting optical plastics
onto a substrate, and the like.
[0003] In an ink-jet head, for example, when a diameter of a nozzle hole for ejecting ink
is reduced, an ink droplet ejected therefrom becomes smaller to a certain extent.
Also proposed is to control an ejection pulse signal which will be supplied to an
actuator that causes an ink droplet to be ejected from a nozzle hole. Thereby an ink
droplet having an arbitrary size may be ejected from a nozzle hole. For example, Japanese
Patent Unexamined Publication.No.
7-285222 discloses an ink-jet recording apparatus which controls an ejection pulse signal
so that a main droplet firstly ejected from a nozzle hole and a satellite droplet
subsequently ejected may have the same weight. This inkjet recording apparatus allows
a resolution along a main scanning direction to be substantially doubled.
[0004] Documents
EP-A-1398 155 and
US-A-2004/0095941 (preambles of claims 1 and 3) disclose an apparatus for ejecting droplets, comprising:
a reservoir in which liquid is reserved;
a pressure applicator that applies pressure to the liquid reserved in the reservoir;
a nozzle hole communicating with the reservoir and having an ejection opening that
can sequentially eject a main droplet and a satellite droplet having a volume smaller
than that of the main droplet;
a main droplet catcher positioned between the nozzle hole and an ejection object so
as to come into contact with the main droplet but not with the satellite droplet,
to thereby catch the main droplet alone, and
a trajectory controller so as to differentiate a trajectory of the satellite droplet
from a trajectory of the main droplet,
wherein the main droplet catcher is disposed on the trajectory of the main droplet.
SUMMARY OF THE INVENTION
[0006] However, considering a manufacturing technique and a manufacturing cost, reduction
in diameter has its limit.
Moreover, although in the above-mentioned reference the main droplet and the satellite
droplet have substantially the same size, in fact it is almost impossible that both
the main and satellite droplets ejected from the nozzle hole are made into fine droplets
because the nozzle hole has a certain extent of diameter. Therefore, this technique
for ejecting droplets sees difficulty in forming fine dots onto an ejection object
in order to achieve a high-quality printing or a very fine wiring pattern.
[0007] An object of the present invention is to provide an apparatus for ejecting droplets
which can form a fine dot onto an ejection object.
[0008] According to a first aspect of the present invention as defined in claim 1, there
is provided an apparatus for ejecting droplets comprising a reservoir, a pressure
applicator, a nozzle hole, and a main droplet catcher. In the reservoir, liquid is
reserved. The pressure applicator applies pressure to the liquid reserved in the reservoir.
The nozzle hole communicates with the reservoir and has an ejection opening that can
sequentially eject a main droplet and a satellite droplet having a volume smaller
than that of the main droplet. The main droplet catcher is positioned between the
nozzle hole and an ejection object so as to come into contact with the main droplet
but not with the satellite droplet, to thereby catch the main droplet alone. A trajectory
controller is provided that differentiates a trajectory of the satellite droplet from
a trajectory of the main droplet, the trajectory controller being a notch formed at
the ejection opening of the nozzle hole and formed by notching a sidewall defining
the nozzle hole along a radial direction of the ejection opening, the notch having
a distance from a center of the ejection opening except the notch larger than that
of the ejection opening except the notch, a periphery of the notch having a curvature
larger than that of a periphery of the ejection opening except the notch.
[0009] According to a second aspect of the invention as defined in claim 3 a trajectory
controller is provided that differentiates a trajectory of the satellite droplet from
a trajectory of the main droplet, wherein:
a liquid-repellent film is formed on an ink ejection face excluding a part thereof,
on which the ejection opening of the nozzle hole opens; and
the trajectory controller is the part of the ink ejection face where the liquid-repellent
film is not formed, the' part extending from the ejection opening of the nozzle hole
in a radial direction of the ejection opening.
[0010] According to a third aspect of the invention an apparatus is provided according to
claim 4.
[0011] In the foregoing apparatus for ejecting droplets, when the pressure applicator applies
pressure to the liquid reserved in the reservoir, the nozzle hole which communicates
with the reservoir ejects droplets. The nozzle hole sequentially ejects the main droplet
and the satellite droplet having a volume smaller than that of the main droplet. The
main droplet catcher is positioned between the nozzle hole and the ejection object
so as to come into contact with the main droplet but not with the satellite droplet.
The main droplet is caught by the main droplet catcher, and therefore only the satellite
droplet having the smaller volume can be ejected to the ejection object. As a result,
a fine dot can be formed an the ejection object.
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] Other and further objects, features and advantages of the invention will appear more
fully from the following description taken in connection with the accompanying drawings
in which:
FIG. 1 schematically illustrates an ink-jet printer according to a first embodiment
of the present invention;
FIG. 2 is a local enlarged top view of an ink-jet head included in the ink-jet printer
of FIG. 1;
FIG. 3 illustrates a section taken along a line III-III of FIG. 2;
FIG. 4A is a local sectional view around a nozzle hole of FIG. 3;
FIG. 4B illustrates a plane of the nozzle hole of FIG. 4A, as Seen from a bottom side;
FIGS. 5A to 5E are views for explaining how an ink droplet is ejected from a nozzle
hole;
FIG. 6A is a local sectional view around a nozzle hole according to a first modification
of the first embodiment;
FIG. 6B illustrates a plane of the nozzle hole of FIG. 6A, as seen from a bottom side;
FIG. 7A is a local sectional view around a nozzle hole according to a second modification
of the first embodiment;
FIG. 7B illustrates a plane of the nozzle hole of FIG. 7A, as seen from a bottom side;
FIG. 8A is a local sectional view around a nozzle hole according to a third modification
of the first embodiment;
FIG. 8B illustrates a plane of the nozzle hole of FIG. 8A, as seen from a bottom side;
FIG. 9 corresponds to FIG. 3, and illustrates a section of an ink-jet head according
to a second embodiment of the present Invention;
FIG. 10A is a local sectional view around a nozzle hole of FIG. 9;
FIG. 10B illustrates a plane of the nozzle hole of FIG. 10A, as seen from a bottom
side;
FIGS. 11A to 11E are views for explaining how an ink droplet is ejected from a nozzle
hole.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0013] In the following, certain preferred embodiments of the present invention will be
described with reference to 10 the accompanying drawings.
[0014] A first embodiment of the present invention will firstly be described below. In the
first embodiment, the present invention is applied to a serial-type ink-jet head for
ejecting ink onto a recording sheet, which is adopted as an apparatus for ejecting
droplets. Here a brief description will be given to an ink-jet printer 100 including
an ink-jet head 1 of this embodiment. As illustrated in FIG. 1, the ink-jet printer
100 includes a carriage 101, an ink-jet head 1, and a conveyance roller 102. The carriage
101 is movable in a transverse direction in FIG. 1, that is, in a main scanning direction.
The ink-jet head 1 is mounted an the carriage 101 and ejects ink to a recording sheet
P. The conveyance roller 102 conveys the recording sheet P frontward in FIG. 1.
The ink-jet head 1 moves in the main scanning direction together with the carriage
101, and ejects ink to the recording sheet P from an ejection opening of a nozzle
hole which opens in a lower face of the ink-jet head 1 as an ink ejection face 5.
The ink-jet head 1 thus performs recording an the recording sheet P which is then
conveyed by the conveyance roller 102 frontward (i.e., in a paper conveyance direction)
and discharged.
[0015] Next, the ink-jet head 1 will be described in detail. As illustrated in FIGS. 2 and
3, the ink-jet head 1 includes a passage unit 2 and a piezoelectric actuator 3. In
the passages unit 2, individual ink passages each corresponding to each pressure chamber
14 are formed. The piezoelectric actuator is bonded to an upper face of the passage
unit 2.
[0016] The passage unit 2 will be described. As illustrated in FIG. 3, the passage unit
2 includes a cavity plate 10, a base plate 11, a manifold plate 12, and a nozzle plate
13. These four plates 10 to 13 are put in layers and bonded to one another. The cavity
plate 10, the base plates 11, and the manifold plate 12 are plates made of stainless
steel, in which a manifold 17, pressure chambers 14, communication holes 15, 16, 19,
etc., all constituting the individual ink passager can easily be formed by means of
an etching process. The nozzle plate 13 is made of a polymeric synthetic resin such
as polyimide, etc., but the nozzle plate 13 as well as the aforementioned plates 10
to 12 may be made of a metallic material such as stainless steel, too.
[0017] Many pressure chambers 14 are formed through the cavity plate 10. The pressure chambers
14 open in a surface of the passage unit 2, that is, in a face to which a diaphragm
30 is bonded as will be described later. The pressure chambers 14, only eight of which
are shown in FIG. 2, are arranged in a zigzag pattern along a plane. Each pressure
chamber 14 har, in a plan view, a substantially elliptic shape with its longer axis
being along the main scanning direction.
[0018] In the base plate 11, communication holes 15 and 16 are formed so as to overlap opposite
lengthwise ends of each pressure chamber 14 in a plan view. In the manifold plate
12, manifold channels 17 extending along the paper conveyance direction (i.e., vertical,
direction in FIG. 2) are formed. In a plan view, each manifold channel 17 overlaps
a right half of each pressure chamber in FIG. 2. The manifold channels 17 are supplied
with ink from an ink tank (not illustrated) and thus always filled up with ink. In
the manifold plate 12, further, communication holes 19 are formed so as to overlap
the respective communication holes 16 in a plan view.
[0019] In the nozzle plate 13, nozzle holes 20 are formed such that, in a plan view, each
of them overlaps a left end of each pressure chamber 14, that is, each of them overlaps
the communication holes 16 and 19 in each pair. The nozzle holes 20 are formed by
processing a substrate a polymeric synthetic resin (e.g., polyimide, etc.) using excimer
laser. The nozzle hole 20 has a circular shape when sectioned along a horizontal direction,
and a tapered shape when sectioned along a vertical direction. As illustrated in FIGS.
4A and 4B, a notch 21 is formed at a periphery of each nozzle hole 20 in the nozzle
plate 13, that is, formed an a sidewall defining each nozzle hole 20. The notch 21
is formed by cutting the periphery or the sidewall in a radial direction of the ejection
opening 24 (at a left-side radius in FIG. 3). The notch 21 is formed continuously
from an upper end to a lower end of the nozzle 20, that is, formed in the sidewall
defining the nozzle hole 20 throughout its entire length along the axis of the nozzle
hole 20. Accordingly, each of the both openings of the nozzle hole 20 including the
notch 21, one of which opens in an upper face of the nozzle plate 13 bonded to the
manifold plate 12 and the other of which opens in a lower face of the nozzle-plate
13 serving as the ink ejection face 5, has such a shape that a part of its circular
edge protrudes outward in the radial direction of the ejection opening 24 (i.e., leftward
in FIGS. 3, 4A, and 4B) to be away from an axis Lof the nozzle hole 20. As illustrated
in FIGS. 3 and .4A, a highly liquid-repellent film 25 is formed throughout the ink
ejection face 5 so that the neighbourhood of each ejection opening 24 can be prevented
from getting wet with ink.
[0020] Below the nozzle plate 13, a projection 22 having an L-shaped section is provided.
An ink passage 23 which communicates with the manifold channel 17 is formed within
the projection 22. The projection 22 having one end communicating with the manifold
channel 17 extends downward therefrom, and further extends horizontally to substantially
right under the ejection opening 24 of the nozzle hole 20 (i.e., extends left to right
in FIG. 3). A front end 22a of the projection 22 has its lower part horizontally sticking
out so that the lower part gets closer to the axis Lof the nozzle hole 20 than an
upper part does. The projection 22 will be described in more detail later.
[0021] As illustrated in FIG. 3, the manifold channel 17 communicates through the communication
hole 15 with the pressure chamber 14, and further the pressure chamber 14 communicates
through the communication holes 16 and 19 to the nozzle hole 20. Thus, an individual
ink passage which extends from the manifold channel 17 through each pressure chamber
14 to a nozzle hole 20 is formed within the passage unit 2.
[0022] Next, the piezoelectric actuator. 3 will be described. As illustrated in FIGS. 2
and 3, the piezoelectric actuator 3 includes the diaphragm 30, a piezoelectric layer
31, and individual electrodes 32. The diaphragm 30 has electroconductivity and is
disposed on the surface of the passage unit 2. The piezoelectric layer 31 is disposed
on a surface of the diaphragm 30 so that it extends over many pressure chambers 14.
The individual electrodes 32 are formed on a surface of the piezoelectric layer 31
to correspond to the respective pressure chambers 14. The piezoelectric actuator 3
serves to change the volume of the pressure chamber to thereby apply pressure to ink
contained in the pressure chamber 14.
[0023] The diaphragm 30 is a plate made of stainless steel having a substantially rectangular
shape in a plan view. The diaphragm 30 is bonded to an upper face of the cavity plate
10 so that it closes' openings of many pressure chambers 14. The diaphragm 30 is opposed
to many individual electrodes 32, and serves as a common electrode that produces an
electric field in the piezoelectric layer 31 disposed between the individual electrodes
32 and the diaphragm 31.
[0024] The diaphragm 31 is a solid solution of lead titanate and lead zirconate, and its
base is a lead zirconate titanate (PZT) having ferroelectricity. The piezoelectric
layer 31 can be formed by means of, e.g., an aerosol-deposition method (AD method)
in which ultra-fine particles of a material are collided against each other at a high
speed and deposited. In addition, a sol-gel method, a sputtering method, a hydrothermal
method, a CVD (chemical vapor deposition) method, and the like can also be' employed.
Besides, in order to form the piezoelectric layer 31, a piezoelectric sheet obtained
by burning a green sheer of PZT can be bonded to the surface of the diaphragm 30.
[0025] Each individual electrode 32 is made of a conductive material such as gold, and has
an elliptic shape slightly smaller than the pressure chamber 14 in a plan view. As
illustrated in FIG. 2, in a plan view, the individual electrode 32 overlaps a middle
part of its corresponding pressure chamber 14. On the surface of the piezoelectric
layer 31, a wiring portion 35 extends from one end of each individual electrode 32
(a right end in FIG. 2) in a direction along the longer axis of the individual electrode
32. The wiring portion 35 is electrically connected to a driver IC (not illustrated)
which selectively supplies a drive voltage to a corresponding individual electrode
32.
[0026] Next, a function of the piezoelectric actuator 3 will be described. When a driver
IC selectively supplies a drive voltage to an individual electrode 32, a potential
of that individual electrode 32 which is disposed on the upper side of the piezoelectric
layer 31 is differentiated from a potential of the diaphragm 30 as the common electrode
which is disposed on the lower side of the piezoelectric layer 31 and kept at the
ground potential. This causes a vertical electric field to occur at a portion of the
piezoelectric layer 31 sandwiched between each individual electrode 32 and the diaphragm
30.
Consequently, a portion of the piezoelectric layer 31 right under the individual electrode
32 which has been supplied with the drive voltage contracts in the horizontal direction
which is perpendicular to the polarization occurring in the vertical direction. Such
contraction of the piezoelectric layer 31 causes the diaphragm 30 to deform into a
convex shape toward the pressure chamber 14. The volume of the pressure chamber 14
is thereby reduced to apply pressure onto ink contained in the pressure chamber 14,
so that the ink is ejected from a nozzle hole 20 which communicate with the aforesaid
pressure chamber 14.
[0027] The ejection of an ink droplet from the nozzle hole 20 will be described in detail
with reference to FIGS. 5A to 5E. Here will be described an example in which a main
droplet
1a is firstly ejected from the nozzle hole 20 and subsequently a satellite droplet Ib
having a volume smaller than that of the man droplet 1a. However, depending an a design
of the nozzle hole 20, a design of the individual ink passage within the passage unit
2, a condition for driving the piezoelectric actuator 3, and the like, it may be possible
that a center part of the meniscus appearing in the ejection opening 24 of the nozzle
hole 20 rapidly gets protruding upon starting an ejection operation and a front end
of this protrusion gets separated and ejected as a satellite droplet Ib followed by
an ejection of a main droplet
1a. In the present invention, either one of a main droplet
1a and a satellite droplet Ib can be ejected earlier than the other. In other words,
the present invention does not depend an an ejection order of main and satellite droplets
Ia and Ib.
[0028] Referring to FIG. 5A, a meniscus appears in the vicinity of the ejection opening
24 of the nozzle hole 20. When, in this condition, the piezoelectric actuator 3 applies
pressure to ink contained in the pressure chamber 14, the ink protrudes from the ejection
opening 24 of the nozzle hole 20 as illustrated in FIG. 5B. The protruding ink is
continuous to the nozzle hole 20. When a portion of the protruding ink which is in
contact with the ejection opening 24 of the nozzle hole 20, that is, a tail
lt of the protruding ink is pulled in a direction opposite to a droplet-ejection direction
(i.e., pulled upward in FIGS. 5A to 5E), the portion of the protruding ink except
the tail
lt gets separated and is ejected as a main droplet
la (see FIG. 5C) and then the tail lt is ejected as a satellite droplet Ib (see FIG.
5D). The main droplet la has a volume of approximately several pl and the satellite
droplet Ib has a volume of approximately 2 to 500 fl (femtoliter), for example.
[0029] The main droplet
la flies downward along the axis
L of the nozzle hole 20. As illustrated in FIG. 3, the projection 22 is provided below
the nozzle plate 13. The projection 22 extends to substantially right under the ejection
opening 24 of the nozzle hole 20. The front end 22a of the projection 22 has its lower
part sticking out beyond the axis
L of the nozzle hole 20. Therefore, the main droplet
la is caught in the front end 22a of the projection 22, without reaching the recording
sheet P.
[0030] Since the notch 21 is provided, the satellite droplet Ib flies in a direction inclining
away from the axis
L (see FIG. 5D), which is different from the direction of flying of the main droplet
la. To be more specific, the tail lt is pulled into the notch 21 as illustrated in FIG.
5C. After the main droplet
la is ejected, the tail lt forms the satellite droplet Ib which flies from the notch
21 as a starting point as illustrated in FIG. 5D. Since the notch 21 locates opposite
to the projection 22 across the axis L of the nozzle hole 20, the satellite droplet
Ib flies away from the projection 22. Accordingly, the main droplet
la and the satellite droplet Ib fly in different trajectories. The main droplet
la is caught in the front end 22a of the projection 22, while the satellite droplet
Ib flies away from the front end 22a and lands an the recording sheet P without being
caught in the front end 22a of the projection 22, as illustrated in FIG. 5E.
[0031] Here, a specific example of the first embodiment will be described. In this embodiment,
the pressure chamber 14 has a depth of 50 pm, a width (i.e., shorter diameter) of
250 pm, and a length (i.e., longer diameter) 10 of 2.5 mm. The ejection opening 24
of the nozzle hole 20 has a diameter of 20 pm. The notch 21 has a width of 4 pm and
a depth of 4 pm. Employed as the ink is water-based dye ink having a viscosity of
3.0 cP and a surface tension of 39 mN/m. Under these conditions, ink was ejected from
the nozzle hole 20, and a main droplet la and a satellite droplet Ibthus ejected were
measured. Measurement results are shown in TABLE 1.
[0032] As shown in TABLE 1, the main droplet
la was caught 20 in the front end 22a of the projection 22 which locates an the axis
L, while the satellite droplet Ib landed an the recording sheet P without being caught,
because a flying direction of the satellite droplet Ib inclined relative to the axis
L.
[0033] As described above, in the ink-jet head, 1 of the first embodiment, when the piezoelectric
actuator 3 applies pressure to ink contained in a pressure chamber 14, a nozzle hole
20 which communicates with the aforesaid pressure chamber 14 ejects a droplet. The
nozzle hole 20 sequentially ejects the main droplet la and the satellite droplet Ib
having a volume smaller than that of the main droplet
la. The projection 22 is positioned between the nozzle hole 20 and the recording sheet
P so as to come into contact with the main droplet
la but not with the satellite droplet Ib. The main droplet
la is caught by the projection 22, and therefore only the satellite droplet Ib having
the smaller volume is ejected to the recording' sheet P. As a result, a fine dot can
be formed on the recording sheet P.
[0034] The notch 21 formed,in the nozzle plate 13 allows the satellite droplet Ib to fly
in a trajectory different from the trajectory of the main droplet 1a. This can more
ensure that the main droplet
la is caught by the projection 22 with the satellite droplet Ib alone landing on the
recording sheet P.
[0035] Further, the trajectory of the satellite droplet Ib can be differentiated from the
trajectory of the main droplet
la by means of forming the notch 21 in the sidewall defining the nozzle hole 20, which
is merely a simple configuration. This is advantageous from the viewpoint of a manufacturing
cost.
[0036] The notch 21 is formed in the sidewall defining the nozzle hole 20 throughout its
entire length along the axis of the nozzle hole 20. This is advantageous from the
viewpoint of a manufacturing process. To be more specific, the notch 21 can easily
be formed by performing a press working, etc., or alternatively by forming a mask
pattern an the nozzle plate 13 which is then irradiated with excimer laser, both without
a need of any subsequent processing.
[0037] As illustrated in FIG. 3, moreover, the ink passage 23 formed within the projection
22 communicates through the manifold channel 17 to the pressure chamber 14. Accordingly,
when, after an ink ejection, ink is supplied from the manifold channel 17 to the pressure
chamber 14, ink of the main droplet
la which has been caught by the projection 22 flows through the ink passage 23 and the
manifold channel 17 into the pressure chamber 14 so that the ink is ejected again
from the nozzle hole 20. Therefore, ink can be effectively used without a waste.
[0038] A shape of the notch which is formed in the sidewall defining the nozzle hole is
not limited to the above-described one in the first embodiment. It is not always necessary
to form the notch continuously from the lower end to the upper end of the nozzle hole.
For example, a notch 21A according to a first modification of the first embodiment,
as illustrated in FIGS. 6A and 6B, may also be acceptable. The notch 21A gradually
gets narrowed upward from a periphery of an ejection opening 24A which locates at
a lower end of a nozzle hole 20Aand opens in an ink ejection face 5A, so that the
notch 21A may not reach an upper face of the nozzle plate 13A. Thus, the notch may
have various shapes in addition to the illustrated one, as long as it is formed at
the periphery of the ejection opening of the nozzle hole opening in the ink ejection
face.
[0039] Further, according to a second modification of the first embodiment as illustrated
in FIGS. 7A and 7B, a nozzle hole 20B whose ejection opening 24B has an ovoid-shaped
periphery may be formed in the nozzle plate 13B. In this case as well, a satellite
droplet Ib and a main droplet Ia which fly in different trajectories are ejected from
the ejection opening 24B. A shape of the ejection opening 24B is like a combination
of a complete circle 124 and a portion 224 bulging out from the complete circle 124
(which more.specifically is a portion having a shape of a sine-wave within 0 to 180
degrees). A top 224a of the bulging portion 224 has a curvature larger than a curvature
of the complete circle 124.
[0040] The above-described nozzle hole 20, 20A having the notch 21, 21A formed in the sidewall
(see FIGS. 4A, 4B; and FIGS. 6A, 6B) and the nozzle hole 20B of this modification
whose ejection opening 24B has an ovoidshaped periphery (see FIGS. 7A and 7B) have
the following similarities: an ejection opening has a protrusion formed thereat; the
protrusion has a distance from a center of the ejection opening except the protrusion
larger than that of the ejection opening except the protrusion; and a periphery of
the protrusion has a curvature larger than that of a periphery of the ejection opening
except the protrusion. Here, with respect to the nozzle hole 20, 20A having the notch
21, 21A formed in the sidewall, the "center of the ejection opening except the protrusion"
means the axis L of the nozzle hole 20, 20A. With respect to the nozzle hole 20B of
this modification whose ejection opening 24B has the ovoid-shaped periphery, the "center
of the ejection opening except the protrusion" means a center O of the complete circle
124. With respect to both of the nozzle hole 20, 20A and 20B, the "remaining portion"
means an inside of the complete circle in the above example. When these conditions
are satisfied, the satellite droplet Ib and the main droplet Ia which fly in different
trajectories can be ejected from the ejection opening. Therefore, as long as these
conditions are satisfied, an ejection opening having any other shape can be employed
in order to eject the satellite droplet Ib and the main droplet
la which fly in different trajectories.
[0041] In order to differentiate the trajectory of the satellite droplet Ib from the trajectory
of the main droplet
la, other methods can be adopted instead of providing a protrusion at the ejection opening
by forming the periphery of the ejection opening into the ovoid-shape or forming the
notch in the sidewall defining the nozzle hole. For example, a nozzle hole 20C illustrated
in FIGS. 8A and 8B may also be acceptable. The nozzle hole 20C has a circular shape
when sectioned along a horizontal direction and a tapered shape when sectioned along
a vertical direction, which is the same as the shape of the nozzle hole 20 of the
first embodiment illustrated in FIGS. 4A and 4B. However, the nozzle hole 20C differs
from the nozzle hole 20 of the first embodiment in that the notch 21 is not formed
in a sidewall defining the nozzle hole 20C and instead.a part 40 where the liquid-repellent
film 25 does not present are provided on the ink ejection face 5C of the nozzle plate
13C. As illustrated in FIG. 8B, the part 40 where the liquid-repellent film does not
present has a tapered shape extending from an ejection opening 24C of the nozzle hole
20C in a radial direction of the ejection opening 24C. In order to provide the part
40 where the liquid-repellent film does not present, the liquid-repellent film 25
is formed on a whole face of the ink ejection face 5C and then the liquid-repellent
film 25 is partially removed. Alternatively, using a resist processing, etc., the
liquid-repellent film 25 is formed only on an area other than the part 40 where the
liquid-repellent film does not present. The part .40 where the liquid-repellent film
does not present gets more wettable by ink than a portion where the liquid-repellent
film 25 presents. Therefore, in an ejection of a main droplet
1a from the nozzle hole 20C, the tail lt is pulled toward the part 40 where the liquid-repellent
film does not present. Thus, the tail lt forms a satellite droplet Ib which flies
from, as a starting point, the part 40 where the liquidrepellent film does not present
in a direction inclining away from the axis L. In the example illustrated in FIGS.
8A and 8B, therefore, the trajectory of the satellite droplet Ib can be differentiated
from the trajectory of the main droplet
la by means of providing the Part 40 where the liquid-repellent film does not present,
which is merely a simple configuration. This is advantageous from the viewpoint of
a manufacturing cost.
[0042] Next, a second embodiment of the present invention will be described. Here, the
same members as those of the first embodiment will be denoted by the common reference
numerals without their descriptions.
[0043] As illustrated in FIG. 9, a passage unit 52 of an ink-jet head 51 of this embodiment
includes a cavity plate 10, a base plate 11, a manifold plate 12, and a nozzle plate
63. Among these four plates, only the nozzle plate 63 is not the same as the corresponding
plates of the first embodiment.
[0044] As illustrated in FIGS. 10A and 10B, the nozzle hole 70 formed in the nozzle plate
63 has a circular shape when sectioned along a horizontal direction and a tapered
shape when sectioned along a vertical direction, which is the same as the shape of
the nozzle hole 20 of the first embodiment illustrated in FIGS. 4A and 4B. However,
the nozzle hole 70 differs from the nozzle hole 20 of the first embodiment in that
the notch 21 is not formed in a sidewall defining the nozzle hole 70.
[0045] As illustrated in FIG. 9, a projection 72 provided below the nozzle plate 63 is different
from the projection 22 of the first embodiment. A front end 72a of the projection
72 has a slanted shape so as to get away from an axis
L of the nozzle hole 70 at a position more downstream in the droplet-ejection direction.
That is, in the first embodiment the front end 22a of the projection 22 has its lower
part horizontally sticking out so that the lower part gets closer to the axis
L of the nozzle hole 20 than an upper part does, whereas in this embodiment the front
end 72a of the projection 72 has its upper part horizontally sticking out so that
the upper part gets closer to the axis
L of the nozzle hole 70 than a lower part does. The projection 72 extends to substantially
right under the ejection opening 74 which opens in a lower face of the nozzle plate
63 as an ink ejection face 55. An ink passage 73 which communicates with a manifold
channel 17 is formed within the projection 72.
[0046] As illustrated in FIG. 10B, when seen in a direction opposite to the ejection direction,
the upper part of the front end 72a of the projection 72 partially overlaps the ejection
opening 74 of the nozzle hole 70 but does not go beyond the axis L of the nozzle hole
70. Specifically, the front end 72a is positioned so as to partially overlap the main
droplet
1a which flies downward along the axis L of the nozzle hole 70 but not to overlap the
satellite droplet 1b. This arrangement can be achieved because the satellite droplet
Ib has a very small diameter and has a volume much smaller than a volume of the main
droplet
la (
e.g., a few tenths of the volume of the main droplet
la, for example).
[0047] The ejection of an ink droplet from the nozzle hole 70 will be described in detail
with reference to FIGS. 11A to 11B. Referring to FIG. 11A, a meniscus appears in the
vicinity of the ejection opening 74 of the nozzle hole 70. When, in this condition,
a piezoelectric actuator 3 applies pressure to ink contained in a pressure chamber
14, the ink protrudes from the ejection opening 74 of the nozzle hole 70 in the saure
manner as illustrated in FIG. 5B. When a tail
lt of ink is pulled in a direction opposite to a droplet-ejection direction (i.e., pulled
upward in FIGS. 11A to 11E), the Portion of the ink except the tail
lt gets separated and is ejected as a main droplet
la (see FIG. 11B) and then the tail lt is ejected as a satellite droplet Ib (see FIG.
11C).
[0048] Both the main droplet
la and the satellite droplet Ib fly downward along the axis
L of the nozzle hole 70. In this embodiment, differently from in the first embodiment,
the notch 21 is not formed and therefore a trajectory of the satellite droplet Ib
does not incline relative to the axis
L but is parallel to the axis
L Therefore, the main droplet 1a and the satellite droplet Ib fly in the same trajectory.
[0049] Although the main droplet 1a and the satellite droplet Ib fly in the same trajectory,
they have different diameters. As described above, the front end 72a of the projection
72 is positioned so as to partially overlap the main droplet 1a having the larger
volume but not to overlap the satellite droplet Ib having the smaller volume. Accordingly,
as illustrated in FIG. 11C, the main droplet
1a is caught in the front end 72a of the projection 72, without reaching the recording
sheet P. On the other hand, the satellite droplet Ib lands an the recording sheet
P without being caught in the front end 72a of the projection 72, as illustrated in
FIGS. 11D and 11E.
[0050] In this embodiment, the front end 72a of the projection 72 has the slanted shape
so as to get away from the axis
L of the nozzle hole 70 at the more downstream in the droplet-ejection direction. Due
to this configuration, the main droplet
1a is hitched and caught by the front end 72a of the projection 72, and then moves from
an upper side to a lower side of the front end 72a to thereby get away from the axis
L of the nozzle hole 70. This can prevent the main droplet 1a from interfering the
subsequently-ejected satellite droplet Ib.
[0051] Here, a specific example of the second embodiment will be described. In this embodiment,
the pressure chamber 14 has a depth of 50 pm, a width (i.e., shorter diameter) of
250 pm, and a length (i.e., longer diameter) of 2.5 mm. The ejection opening 74 of
the nozzle hole 70 has a diameter of 20 pm. Employed as the ink is waterbased dye
ink having a viscosity of 3.0 cP and a surface tension of 39 mN/m. Under these conditions,
ink was ejected from the nozzle hole 70, and a main droplet
1a and a satellite droplet Ibthus ejected were measured.
Measurement results are shown in TABLE 2.
[0052] As shown in TABLE 2, both the main droplet 1a and the satellite droplet Ib flied
along the axis
L of the nozzle hole 70, but a diameter of the satellite droplet Ib was not more than
1/3 of a diameter of the main droplet 1a and therefore the projection 72 caught the
main droplet
1a alone without catching the satellite droplet Ib. Thus, only the satellite droplet
Ib landed on the recording sheet P.
[0053] The projection 72 is preferably positioned such that its front end 72a is away from
the satellite droplet Ib as much as possible and at the Same time it comes into slight
contact with the main droplet 1a. To this end, it is desired that the ejection of
the main droplet 1a and the satellite droplet Ib should be observed for measuring
their diameters in advance and a position of the front end 72a should be determined
accordingly.
[0054] As described above, in the ink-jet head 51 of the second embodiment, similarly in
the first embodiment, only the satellite droplet Ib having the smaller volume lands
on the recording sheet P, so that a fine dot can be formed on the recording sheet
P. Further, in this embodiment, the notch 21 as in the first embodiment (see FIGS.
4A and 4B) is not formed in the sidewall defining the nozzle hole 70. Therefore, ejection
of an ink droplet from the nozzle hole 70 can be stabilized. This can improve print
quality.
[0055] In the above-described first and second embodiment, the present invention is applied
to a serial-type ink-jet head, as an example. However, the present invention is also
applicable to a line-type ink-jet head which is elongated along a width of a recording
sheet. In addition, the present invention may be applied to ink-jet heads included
in ink-jet type fax machines or copying machines, not limited ink-jet heads included
in printers.
[0056] Further, the present invention is applicable to apparatuses for ejecting droplets
other than ink-jet heads. For example, the present invention can be applied to apparatuses
for ejecting droplets used for forming a fine wiring pattern an a substrate by ejecting
a conductive paste, for forming a high-resolution display by ejecting an organic luminescent
material onto a substrate, for forming a micro-optical device such as an optical waveguide
by ejecting optical plastics onto a substrate, and the like.
[0057] While this invention has been described in conjunction with the specific embodiments
outlined above, it is evident that many alternatives, modifications and variations
will be apparent to those skilled in the art. Accordingly, the preferred embodiments
of the invention as set forth above are intended to be illustrative, not limiting.
Various changes may be made without departing from the scope of the invention as defined
in the following claims.
TABLE 1
| |
MAIN DROPLET |
SATELLITE DROPLET |
| DIAMETER (P m) |
23 |
7 |
| VOLUME (p1) |
6.4 |
0.18 |
| SPEED (m/s) |
8 |
5. 8 |
| TRAJECTORY |
substantially along axis |
40 ∼t m deviated from axis at point of 0.5 mm advanced |
TABLE 2
| |
MAIN DROPLET |
SATELLITE DROPLET |
| DIAMETER (,u m) |
23 |
7 |
| VOLUME (p1) |
6. 4 |
0.18 |
| SPEED (m/s) |
8 |
6.2 |
| TRAJECTORY |
substantially along axis |
substantially along axis |
1. Vorrichtung zum Ausstoßen von Tröpfchen, aufweisend: einen Vorratsbehälter, in dem
Flüssigkeit vorrätig gehalten wird;
einen Druckapplikator (3), der Druck auf die im Vorratsbehälter vorrätig gehaltene
Flüssigkeit ausübt;
ein Düsenloch (20), das mit dem Vorratsbehälter in Verbindung steht und das eine Ausstoßöffnung
(24) aufweist, die nacheinander ein Haupttröpfchen und ein Begleittröpfchen mit einem
kleineren Volumen als das Haupttröpfchen ausstoßen kann;
einen Haupttröpfchenfänger (22), der zwischen dem Düsenloch (20) und einem Ausstoßungsziel
und auf einer Flugbahn des Haupttröpfchens angeordnet ist, so dass er mit dem Haupttröpfchen,
nicht aber mit dem Begleittröpfchen in Berührung kommt, um dadurch nur das Haupttröpfchen
einzufangen; und
eine Flugbahn-Steuereinrichtung, die dafür sorgt, dass eine Flugbahn des Begleittröpfchens
sich von einer Flugbahn des Haupttröpfchens unterscheidet,
dadurch gekennzeichnet, dass die Flugbahn-Steuereinrichtung eine Kerbe (21) ist, die an der Ausstoßöffnung (24)
des Düsenlochs (20) ausgebildet ist und die durch Einkerben einer Seitenwand, die
das Düsenloch (20) begrenzt, radial zur Ausstoßöffnung ausgebildet ist, wobei die
Kerbe (20) einen Abstand von einem Mittelpunkt der Ausstoßöffnung ohne die Kerbe hat,
der größer ist als derjenige der Ausstoßöffnung ohne die Kerbe, wobei ein Umfangsrand
der Kerbe eine Krümmung aufweist, die größer ist als der Umfangsrand der Ausstoßöffnung
ohne die Kerbe.
2. Vorrichtung nach Anspruch 1, wobei die Kerbe (21) über eine gesamte Länge der Seitenwand
entlang einer Achse des Düsenlochs ausgebildet ist.
3. Vorrichtung zum Ausstoßen von Tröpfchen, aufweisend: einen Vorratsbehälter, in dem
Flüssigkeit vorrätig gehalten wird;
einen Druckapplikator (3), der Druck auf die im Vorratsbehälter vorrätig gehaltene
Flüssigkeit ausübt;
ein Düsenloch (20C), das mit dem Vorratsbehälter in Verbindung steht und das eine
Ausstoßöffnung (24C) aufweist, die nacheinander ein Haupttröpfchen und ein Begleittröpfchen
mit einem kleineren Volumen als das Haupttröpfchen ausstoßen kann;
einen Haupttröpfchenfänger (22), der zwischen dem Düsenloch (20C) und einem Ausstoßungsziel
und auf einer Flugbahn des Haupttröpfchens angeordnet ist, so dass er mit dem Haupttröpfchen,
nicht aber mit dem Begleittröpfchen in Berührung kommt, um dadurch nur das Haupttröpfchen
einzufangen; und
eine Flugbahn-Steuereinrichtung, die dafür sorgt, dass eine Flugbahn des Begleittröpfchens
sich von einer Flugbahn des Haupttröpfchens unterscheidet,
dadurch gekennzeichnet, dass
ein flüssigkeitsabstoßender Film (25) auf einer Tintentausstoßfläche ausgebildet ist,
abgesehen von dem Abschnitt, wo sich die Ausstoßöffnung des Düsenlochs öffnet; und
die Flugbahn-Steuereinrichtung der Abschnitt (40) der Ausstoßfläche ist, wo der flüssigkeitsabstoßende
Film nicht ausgebildet ist, wobei dieser Abschnitt (40) sich von der Ausstoßöffnung
(24C) des Düsenlochs (20C) in einer Richtung radial zur Ausstoßöffnung erstreckt.
4. Vorrichtung zum Ausstoßen von Tröpfchen, aufweisend: einen Vorratsbehälter, in dem
Flüssigkeit vorrätig gehalten wird;
einen Druckapplikator (3), der Druck auf die im Vorratsbehälter vorrätig gehaltene
Flüssigkeit ausübt;
ein Düsenloch (70), das mit dem Vorratsbehälter in Verbindung steht und das eine Ausstoßöffnung
(74) aufweist, die nacheinander ein Haupttröpfchen und ein Begleittröpfchen mit einem
kleineren Volumen als das Haupttröpfchen ausstoßen kann; und
einen Haupttröpfchenfänger (72), der zwischen dem Düsenloch (70) und einem Ausstoßungsziel
so angeordnet ist, dass er mit dem Haupttröpfchen, nicht aber mit dem Begleittröpfchen
in Berührung kommt, um dadurch nur das Haupttröpfchen einzufangen;
dadurch gekennzeichnet, dass
das Haupttröpfchen in einem vorderen Ende (72a) des Haupttröpfchenfängers (72) eingefangen
wird, und ein Tintenkanal (73) im Haupttröpfchenfänger (72) ausgebildet ist,
wobei der Haupttröpfchenfänger (72) so angeordnet ist, dass sein vorderes Ende (72a)
teilweise das Haupttröpfchen, aber nicht das Satellitentröpfchen in Bezug auf eine
Achse des Düsenlochs überschneidet, und wobei das vordere Ende (72a) des Haupttröpfchenfängers
(72) eine abgeschrägte Form hat, so dass sein Abstand zur Achse der Ausstoßöffnung
an einer Position weiter stromabwärts in der Richtung, in der das Tröpfchen ausgestoßen
wird, größer wird.
5. Vorrichtung nach einem der Ansprüche 1 bis 4, wobei der Tintenkanal (73) im Haupttröpfchenfänger
mit dem Vorratsbehälter in Verbindung steht.